Cearsolo Xabier, Arrue Mario, Gabilondo Maitane, Sanchez Jon Mikel, Galarraga Haize, Garcia de Cortazar Maider, Girot Mata Franck
Department of Additive Manufacturing, IMH Campus, Azkue Auzoa, 1, 20870 Elgoibar, Spain.
TECNALIA, Basque Research and Technology Alliance (BRTA), Paseo Mikeletegi, 2, 20009 Donostia, Spain.
Materials (Basel). 2023 Jan 9;16(2):636. doi: 10.3390/ma16020636.
Metal additive manufacturing technologies are gaining great interest. However, the existing metallic alloys are generally formulated for conventional manufacturing processes. Thus, it is necessary to adapt their chemical composition or develop new alloys for the manufacturing conditions of additive manufacturing processes. The main method for manufacturing metal powder is gas atomization, but it is very expensive with long manufacturing times. Therefore, it is necessary to develop alloy validation methods that simplify the development process of new alloys. This paper deals with a methodology based on thermodynamic heat transfer equations, simulation, and powderless tests. This novel methodology enabled the determination of the optimal conditions for the laser melting deposition process of the commercial AA7075 alloy with a reduced number of experimental tests with powder, reducing the difficulties inherent to powder processing. The developed process was divided into two stages. In the first stage, the heating of the substrate was studied. In the second stage, the depositions of single tracks were validated with the parameters extrapolated from the previous stage. Hence, it was possible to manufacture single tracks free of cracks with an adequate aspect ratio.
金属增材制造技术正引起人们极大的兴趣。然而,现有的金属合金通常是为传统制造工艺配制的。因此,有必要调整其化学成分或开发新的合金以适应增材制造工艺的制造条件。制造金属粉末的主要方法是气体雾化,但成本非常高且制造时间长。因此,有必要开发能简化新合金开发过程的合金验证方法。本文探讨了一种基于热力学传热方程、模拟和无粉末试验的方法。这种新颖的方法能够通过减少粉末实验测试的数量来确定商用AA7075合金激光熔化沉积工艺的最佳条件,降低了粉末加工固有的难度。所开发的工艺分为两个阶段。在第一阶段,研究了基板的加热情况。在第二阶段,用从上一阶段推断出的参数验证了单道熔敷情况。因此,能够制造出具有合适纵横比且无裂纹的单道熔敷层。